Reichman David, Man Limor, Park Laura, Lis Raphael, Gerhardt Jeannine, Rosenwaks Zev, James Daylon
Center for Reproductive Medicine and Infertility, Weill Cornell Medical College, New York, NY 10065, United States.
Tri-Institutional Stem Cell Derivation Laboratory, Weill Cornell Medical College, New York, NY 10065, United States.
Stem Cell Res. 2016 Sep;17(2):391-400. doi: 10.1016/j.scr.2016.09.005. Epub 2016 Sep 13.
During development, endothelial cells (EC) display tissue-specific attributes that are unique to each vascular bed, as well as generic signaling mechanisms that are broadly applied to create a patent circulatory system. We have previously utilized human embryonic stem cells (hESC) to generate tissue-specific EC sub-types (Rafii et al., 2013) and identify pathways that govern growth and trans-differentiation potential of hESC-derived ECs (James et al., 2010). Here, we elucidate a novel Notch-dependent mechanism that induces endothelial to mesenchymal transition (EndMT) in confluent monolayer cultures of hESC-derived ECs. We demonstrate density-dependent induction of EndMT that can be rescued by the Notch signaling inhibitor DAPT and identify a positive feedback signaling mechanism in hESC-ECs whereby trans-activation of Notch by DLL4 ligand induces elevated expression and surface presentation of DLL4. Increased Notch activation in confluent hESC-EC monolayer cultures induces areas of EndMT containing transitional cells that are marked by increased Jagged1 expression and reduced Notch signal integration. Jagged1 loss of function in monolayer hESC-ECs induces accelerated feedback stimulation of Notch signaling, increased expression of cell-autonomous, cis-inhibitory DLL4, and EndMT. These data elucidate a novel interplay of Notch ligands in modulating pathway activation during both expansion and EndMT of hESC-derived ECs.
在发育过程中,内皮细胞(EC)表现出每个血管床特有的组织特异性属性,以及广泛应用于创建畅通循环系统的通用信号传导机制。我们之前利用人类胚胎干细胞(hESC)生成组织特异性EC亚型(拉菲伊等人,2013年),并确定了控制hESC来源的EC生长和转分化潜能的途径(詹姆斯等人,2010年)。在此,我们阐明了一种新的Notch依赖性机制,该机制在hESC来源的EC的汇合单层培养物中诱导内皮向间充质转化(EndMT)。我们证明了EndMT的密度依赖性诱导可被Notch信号抑制剂DAPT挽救,并确定了hESC-EC中的一种正反馈信号机制,即DLL4配体对Notch的反式激活诱导DLL4表达升高和表面呈现增加。汇合的hESC-EC单层培养物中Notch激活增加会诱导含有过渡细胞的EndMT区域,这些过渡细胞以Jagged1表达增加和Notch信号整合减少为特征。单层hESC-EC中Jagged1功能丧失会诱导Notch信号的加速反馈刺激、细胞自主的顺式抑制性DLL4表达增加以及EndMT。这些数据阐明了Notch配体在调节hESC来源的EC扩增和EndMT过程中途径激活方面的新相互作用。